Award Abstract # 0449606
CAREER: Massively Parallel Simulation of Multiscale Dynamics and Plasma Heating in Alfvenic Turbulence

NSF Org: AGS
Division of Atmospheric and Geospace Sciences
Recipient: UNIVERSITY OF CALIFORNIA IRVINE
Initial Amendment Date: October 28, 2004
Latest Amendment Date: May 27, 2009
Award Number: 0449606
Award Instrument: Continuing Grant
Program Manager: Kile B. Baker
AGS
 Division of Atmospheric and Geospace Sciences
GEO
 Directorate for Geosciences
Start Date: July 1, 2005
End Date: September 30, 2010 (Estimated)
Total Intended Award Amount: $0.00
Total Awarded Amount to Date: $498,619.00
Funds Obligated to Date: FY 2005 = $103,674.00
FY 2006 = $92,995.00

FY 2007 = $97,866.00

FY 2008 = $100,855.00

FY 2009 = $103,229.00
History of Investigator:
  • Zhihong Lin (Principal Investigator)
    zhihongl@uci.edu
Recipient Sponsored Research Office: University of California-Irvine
160 ALDRICH HALL
IRVINE
CA  US  92697-0001
(949)824-7295
Sponsor Congressional District: 47
Primary Place of Performance: University of California-Irvine
160 ALDRICH HALL
IRVINE
CA  US  92697-0001
Primary Place of Performance
Congressional District:
47
Unique Entity Identifier (UEI): MJC5FCYQTPE6
Parent UEI: MJC5FCYQTPE6
NSF Program(s): SOLAR-TERRESTRIAL,
MAGNETOSPHERIC PHYSICS
Primary Program Source: app-0105 
app-0106 

app-0107 

01000809DB NSF RESEARCH & RELATED ACTIVIT

01000910DB NSF RESEARCH & RELATED ACTIVIT
Program Reference Code(s): 1045, 0000, OTHR, 1187, 4444
Program Element Code(s): 152300, 575000
Award Agency Code: 4900
Fund Agency Code: 4900
Assistance Listing Number(s): 47.050

ABSTRACT

Random magnetic fluctuations are ubiquitous in laboratory, space, and astrophysical plasmas. The nonlinear, dynamical evolution of Alfvenic turbulence involving disparate spatial-temporal scales plays an important role in plasma heating, particle acceleration, and transport of mass, momentum, and energy in the interplanetary and interstellar medium. Understanding the basic plasma physics principles of Alfvenic turbulence has recently been identified by the National Research Council (NRC) as one of the key challenges in the next decade of research in solar and space physics. In this project, large scale kinetic simulations of Alfvenic turbulence enabled by recent advances in physics models, numerical algorithms, and the dramatically increased speed and capacity of parallel computers, will be utilized to study the physical processes underlying the spectral cascade from large to small scales and the associated energy dissipation leading to plasma heating. This study will also address many important subjects in basic plasma physics, e.g., the effects of wave-particle resonances, finite Larmor radius effects, and compressibility on the cascade and dissipation of Alfvenic turbulence. The wave-particle nonlinearity and wave-wave nonlinearity will be treated on an equal footing and be delineated. The possibility of stochastic ion heating by sub-cyclotron frequency Alfven waves will also be investigated.

The proposed project will leverage cross-cutting research interests between space plasma physics, magnetic fusion science, and computational sciences. Advanced computational tools developed in magnetic fusion research, such as massively parallel gyrokinetic particle-in-cell simulations, will be introduced to space plasma research. Close collaboration will be undertaken with researchers in the Department of Energy's Scientific Discovery through Advanced Computing (SciDAC) Initiative. The proposed budget will support a postdoctoral researcher and a graduate student working on a Ph.D. thesis, and will help establish an advanced plasma simulation program at the University of California, Irvine. The Principal Investigator of this proposal will provide a training and education program that will incorporate state-of-the-art scientific computing in the physics curriculum. The students will learn massively parallel computation for solving real-world problems. Hands-on training will be provided through participation in the proposed plasma turbulence simulation. The course will be open to students from all science and engineering departments where parallel computing becomes an indispensable research tool. A parallel computing lab will be constructed using the PI's existing startup fund to develop innovative algorithms for parallel computing, data analysis, and advanced visualization in both instruction and research. Both the education and research aspects of the project will be integrated into an Interdisciplinary Center for Computational Science recently proposed at the University of California, Irvine.

PUBLICATIONS PRODUCED AS A RESULT OF THIS RESEARCH

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(Showing: 1 - 10 of 11)
Holod, I; Lin, Z "Statistical analysis of fluctuations and noise-driven transport in particle-in-cell simulations of plasma turbulence" PHYSICS OF PLASMAS , v.14 , 2007 View record at Web of Science 10.1063/1.267300
H. Qu and Z. Lin "Gyrokinetic Particle Simulation of Compressional Electromagnetic Modes" Commun. Comput. Phys. , v.4 , 2008 , p.519
H. Qu, Z. Lin, and L. Chen "Nonlinear Saturation of Mirror Instability" Geophy. Res. Lett. , v.35 , 2008 , p.L10108 10.1029/2008GL033907
I. Holod, W. L. Zhang, Y. Xiao, and Z. Lin "Electromagnetic formulation of global gyrokinetic particle simulation in toroidal geometry" Phys. Plasmas , 2009
Qu, HP; Lin, ZH; Chen, L "Gyrokinetic theory and simulation of mirror instability" PHYSICS OF PLASMAS , v.14 , 2007 View record at Web of Science 10.1063/1.272107
Wenlu Zhang, Viktor Decyk, Ihor Holod, Yong Xiao, Zhihong Lin, and Liu Chen "Scalings of energetic particle transport by ion temperature gradient Microturbulence" Phys. Plasmas , v.17 , 2010 , p.055902
Wenlu Zhang, Zhihong Lin, and Liu Chen "Transport of Energetic Particles by Microturbulence in Magnetized Plasmas" Phys. Rev. Lett. , v.101 , 2008 , p.095001 http://dx.doi.org/10.1103/PhysRevLett.101.095001
W. Zhang, Z. Lin, P. H. Yoon, and X. Wang "Two-Fluid Formulation of Lower-Hybrid Drift Instabilities in Current-Sheet Equilibrium with a Guide Field" Commun. Comput. Phys. , v.4 , 2008 , p.719
W. Zhang, Z. Lin, P. H. Yoon, and X. Wang "Two-Fluid Formulation of Lower-Hybrid Drift Instabilities in Current-Sheet Equilibrium with a Guide Field" Commun. Comput. Phys. , v.4 , 2008 , p.719
X. Y. Wang, Y. Lin, L. Chen, and Z. Lin "A particle simulation of current sheet instabilities under finite guide field" Phys. Plasmas , v.15 , 2008 , p.072103 10.1063/1.2938732
Y. Nishimura, Z. Lin, and L. Chen "Full Torus Electromagnetic Gyrokinetic Particle Simulations with Kinetic Electrons" Commun. Comput. Phys. , v.5 , 2009 , p.183
(Showing: 1 - 10 of 11)

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